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Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction

Caloric restriction (CR) can delay onset of several age‐related pathophysiologies and extend lifespan in various species, including rodents. CR also induces metabolic remodeling involved in activation of lipid metabolism, enhancement of mitochondrial biogenesis, and reduction of oxidative stress in...

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Autores principales: Fujii, Namiki, Narita, Takumi, Okita, Naoyuki, Kobayashi, Masaki, Furuta, Yurika, Chujo, Yoshikazu, Sakai, Masahiro, Yamada, Atsushi, Takeda, Kanae, Konishi, Tomokazu, Sudo, Yuka, Shimokawa, Isao, Higami, Yoshikazu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418191/
https://www.ncbi.nlm.nih.gov/pubmed/28256090
http://dx.doi.org/10.1111/acel.12576
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author Fujii, Namiki
Narita, Takumi
Okita, Naoyuki
Kobayashi, Masaki
Furuta, Yurika
Chujo, Yoshikazu
Sakai, Masahiro
Yamada, Atsushi
Takeda, Kanae
Konishi, Tomokazu
Sudo, Yuka
Shimokawa, Isao
Higami, Yoshikazu
author_facet Fujii, Namiki
Narita, Takumi
Okita, Naoyuki
Kobayashi, Masaki
Furuta, Yurika
Chujo, Yoshikazu
Sakai, Masahiro
Yamada, Atsushi
Takeda, Kanae
Konishi, Tomokazu
Sudo, Yuka
Shimokawa, Isao
Higami, Yoshikazu
author_sort Fujii, Namiki
collection PubMed
description Caloric restriction (CR) can delay onset of several age‐related pathophysiologies and extend lifespan in various species, including rodents. CR also induces metabolic remodeling involved in activation of lipid metabolism, enhancement of mitochondrial biogenesis, and reduction of oxidative stress in white adipose tissue (WAT). In studies using genetically modified mice with extended lifespans, WAT characteristics influenced mammalian lifespans. However, molecular mechanisms underlying CR‐associated metabolic remodeling of WAT remain unclear. Sterol regulatory element‐binding protein‐1c (Srebp‐1c), a master transcription factor of fatty acid (FA) biosynthesis, is responsible for the pathogenesis of fatty liver (steatosis). Our study showed that, under CR conditions, Srebp‐1c enhanced mitochondrial biogenesis via increased expression of peroxisome proliferator‐activated receptor gamma coactivator‐1α (Pgc‐1α) and upregulated expression of proteins involved in FA biosynthesis within WAT. However, via Srebp‐1c, most of these CR‐associated metabolic alterations were not observed in other tissues, including the liver. Moreover, our data indicated that Srebp‐1c may be an important factor both for CR‐associated suppression of oxidative stress, through increased synthesis of glutathione in WAT, and for the prolongevity action of CR. Our results strongly suggested that Srebp‐1c, the primary FA biosynthesis‐promoting transcriptional factor implicated in fatty liver disease, is also the food shortage‐responsive factor in WAT. This indicated that Srebp‐1c is a key regulator of metabolic remodeling leading to the beneficial effects of CR.
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spelling pubmed-54181912017-06-01 Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction Fujii, Namiki Narita, Takumi Okita, Naoyuki Kobayashi, Masaki Furuta, Yurika Chujo, Yoshikazu Sakai, Masahiro Yamada, Atsushi Takeda, Kanae Konishi, Tomokazu Sudo, Yuka Shimokawa, Isao Higami, Yoshikazu Aging Cell Original Articles Caloric restriction (CR) can delay onset of several age‐related pathophysiologies and extend lifespan in various species, including rodents. CR also induces metabolic remodeling involved in activation of lipid metabolism, enhancement of mitochondrial biogenesis, and reduction of oxidative stress in white adipose tissue (WAT). In studies using genetically modified mice with extended lifespans, WAT characteristics influenced mammalian lifespans. However, molecular mechanisms underlying CR‐associated metabolic remodeling of WAT remain unclear. Sterol regulatory element‐binding protein‐1c (Srebp‐1c), a master transcription factor of fatty acid (FA) biosynthesis, is responsible for the pathogenesis of fatty liver (steatosis). Our study showed that, under CR conditions, Srebp‐1c enhanced mitochondrial biogenesis via increased expression of peroxisome proliferator‐activated receptor gamma coactivator‐1α (Pgc‐1α) and upregulated expression of proteins involved in FA biosynthesis within WAT. However, via Srebp‐1c, most of these CR‐associated metabolic alterations were not observed in other tissues, including the liver. Moreover, our data indicated that Srebp‐1c may be an important factor both for CR‐associated suppression of oxidative stress, through increased synthesis of glutathione in WAT, and for the prolongevity action of CR. Our results strongly suggested that Srebp‐1c, the primary FA biosynthesis‐promoting transcriptional factor implicated in fatty liver disease, is also the food shortage‐responsive factor in WAT. This indicated that Srebp‐1c is a key regulator of metabolic remodeling leading to the beneficial effects of CR. John Wiley and Sons Inc. 2017-03-03 2017-06 /pmc/articles/PMC5418191/ /pubmed/28256090 http://dx.doi.org/10.1111/acel.12576 Text en © 2017 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Fujii, Namiki
Narita, Takumi
Okita, Naoyuki
Kobayashi, Masaki
Furuta, Yurika
Chujo, Yoshikazu
Sakai, Masahiro
Yamada, Atsushi
Takeda, Kanae
Konishi, Tomokazu
Sudo, Yuka
Shimokawa, Isao
Higami, Yoshikazu
Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title_full Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title_fullStr Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title_full_unstemmed Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title_short Sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
title_sort sterol regulatory element‐binding protein‐1c orchestrates metabolic remodeling of white adipose tissue by caloric restriction
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418191/
https://www.ncbi.nlm.nih.gov/pubmed/28256090
http://dx.doi.org/10.1111/acel.12576
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